A flyback power converter circuit includes: a transformer including a primary side winding coupled to an input power and a secondary side winding coupled to an output node, wherein the input power includes an input voltage; a primary side switch coupled to the primary side winding for controlling the input power to generate an output power on the output node through the secondary side winding, wherein the output power includes an output voltage; a clamping circuit including an auxiliary switch and an auxiliary capacitor connected in series to form an auxiliary branch which is connected with the primary side winding in parallel; and a conversion control circuit for adjusting an ON time of the auxiliary switch according to at least one of a current related signal, the input voltage, and the output voltage, such that the primary side switch is zero voltage switching when turning ON.
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17. A flyback power converter circuit, comprising:
a transformer, which includes a primary side winding coupled to an input power and a secondary side winding coupled to an output node, wherein the input power includes an input voltage and an input current;
a primary side switch, coupled to the primary side winding, and configured to operably control the primary side winding to convert the input power such that the secondary side winding generates an output power on the output node, wherein the output power includes an output voltage and an output current;
a clamping circuit, including:
an auxiliary switch; and
an auxiliary capacitor, coupled to the auxiliary switch in series to form an auxiliary branch which is coupled with the primary side winding in parallel; and
a conversion control circuit, configured to operably generate a primary side switch control signal and an auxiliary switch control signal according to a feedback signal to control the primary side switch and the auxiliary switch respectively to convert the input power to the output power; the conversion control circuit including:
a sequence circuit, configured to operably trigger the auxiliary switch to turn ON according to an auxiliary switch start signal, and trigger the primary side switch to turn ON posterior to an auxiliary dead time after the auxiliary switch turns OFF, such that the turning-ON timing of the primary side switch is determined according to the turning-OFF timing of the auxiliary switch plus the auxiliary dead time, and such that a voltage difference between a current inflow terminal and a current outflow terminal of the primary side switch is substantially zero when the primary side switch turns ON, whereby zero voltage switching is achieved; wherein the conversion control circuit generates the auxiliary switch start signal according to a predetermined clock signal or the feedback signal.
1. A flyback power converter circuit, comprising:
a transformer, which includes a primary side winding coupled to an input power and a secondary side winding coupled to an output node, wherein the input power includes an input voltage and an input current;
a primary side switch, coupled to the primary side winding, and configured to operably control the primary side winding to convert the input power such that the secondary side winding generates an output power on the output node, wherein the output power includes an output voltage and an output current;
a clamping circuit, including:
an auxiliary switch; and
an auxiliary capacitor, coupled to the auxiliary switch in series to form an auxiliary branch which is coupled with the primary side winding in parallel; and
a conversion control circuit, configured to operably generate a primary side switch control signal and an auxiliary switch control signal to control the primary side switch and the auxiliary switch respectively to convert the input power to the output power, wherein the auxiliary switch and the primary side switch do not switch complementarily to each other, the conversion control circuit including:
an auxiliary switch control circuit, configured to operably control the auxiliary switch according to at least one of the followings: (1) a current related signal, (2) the input voltage, and/or (3) the output voltage, such that a voltage difference between a current inflow terminal and a current outflow terminal of the primary side switch is substantially zero when the primary side switch turns ON, whereby zero voltage switching is achieved, wherein the current related signal relates to at least one of the followings: (1) the output current, (2) a conduction current of the primary side switch, and/or (3) a conduction current of the primary side winding; and
a signal sensing circuit, configured to operably sense the current related signal, the input voltage, and/or the output voltage;
wherein an ON time of the auxiliary switch increases according to at least one of the followings: (1) when the current related signal indicates that a peak current of the primary side switch is decreasing, (2) when the input voltage is increasing, and/or (3) when the output voltage is increasing,
such that the auxiliary switch conducts a magnetizing current of a parasitic magnetizing inductance of the primary side winding to discharge a parasitic capacitor of the primary side switch, whereby the primary side switch is zero voltage switching when the primary side switch turns ON.
9. A conversion control circuit, configured to operably control a flyback power converter circuit, the flyback power converter circuit including a transformer, which includes a primary side winding coupled to an input power and a secondary side winding coupled to an output node, wherein the input power includes an input voltage and an input current; a primary side switch, which is coupled to the primary side winding, and is configured to operably control the primary side winding to convert the input power such that the secondary side winding generates an output power on the output node, wherein the output power includes an output voltage and an output current; a clamping circuit, which includes an auxiliary switch and an auxiliary capacitor, the auxiliary capacitor being coupled to the auxiliary switch in series to form an auxiliary branch which is coupled with the primary side winding in parallel; the flyback power converter circuit further including the conversion control circuit, the conversion control circuit being configured to operably generate a primary side switch control signal and an auxiliary switch control signal to control the primary side switch and the auxiliary switch respectively to convert the input power to the output power, wherein the auxiliary switch and the primary side switch do not switch complementarily to each other; the conversion control circuit comprising:
an auxiliary switch control circuit, configured to operably control the auxiliary switch according to at least one of the followings: (1) a current related signal, (2) the input voltage, and/or (3) the output voltage, such that a voltage difference between a current inflow terminal and a current outflow terminal of the primary side switch is substantially zero when the primary side switch turns ON, whereby zero voltage switching is achieved; wherein the current related signal relates to at least one of the followings: (1) the output current, (2) a conduction current of the primary side switch, and/or (3) a conduction current of the primary side winding; and
a signal sensing circuit, configured to operably sense the current related signal, the input voltage, and/or the output voltage
wherein an ON time of the auxiliary switch increases according to at least one of the followings: (1) when the current related signal indicates that a peak current of the primary side switch is decreasing, (2) when the input voltage is increasing, and/or (3) when the output voltage is increasing,
such that the auxiliary switch conducts a magnetizing current of a parasitic magnetizing inductance of the primary side winding to discharge a parasitic capacitor of the primary side switch, whereby the primary side switch is zero voltage switching when the primary side switch turns ON.
3. A flyback power converter circuit, comprising:
a transformer, which includes a primary side winding coupled to an input power and a secondary side winding coupled to an output node, wherein the input power includes an input voltage and an input current;
a primary side switch, coupled to the primary side winding, and configured to operably control the primary side winding to convert the input power such that the secondary side winding generates an output power on the output node, wherein the output power includes an output voltage and an output current;
a clamping circuit, including:
an auxiliary switch; and
an auxiliary capacitor, coupled to the auxiliary switch in series to form an auxiliary branch which is coupled with the primary side winding in parallel; and
a conversion control circuit, configured to operably generate a primary side switch control signal and an auxiliary switch control signal to control the primary side switch and the auxiliary switch respectively to convert the input power to the output power, wherein the auxiliary switch and the primary side switch do not switch complementarily to each other, the conversion control circuit including:
an auxiliary switch control circuit, configured to operably control the auxiliary switch according to at least one of the followings: (1) a current related signal, (2) the input voltage, and/or (3) the output voltage, such that a voltage difference between a current inflow terminal and a current outflow terminal of the primary side switch is substantially zero when the primary side switch turns ON, whereby zero voltage switching is achieved, wherein the current related signal relates to at least one of the followings: (1) the output current, (2) a conduction current of the primary side switch, and/or (3) a conduction current of the primary side winding; and
a signal sensing circuit, configured to operably sense the current related signal, the input voltage, and/or the output voltage;
wherein the auxiliary switch control circuit includes:
a threshold generator circuit, configured to operably generate a voltage threshold according to a reference voltage and the current related signal;
a ramp generator circuit, configured to operably generate a ramp signal according to a reference current and the auxiliary switch control signal;
a comparator circuit, configured to operably compare the ramp signal and the voltage threshold to generate a comparison result; and
a logic circuit, configure to operably generate the auxiliary switch control signal according to the comparison result and an auxiliary switch start signal to control the auxiliary switch, such that an ON time of the auxiliary switch increases when the current related signal indicates that the peak current of the primary side switch is decreasing;
wherein the conversion control circuit generates the auxiliary switch start signal according to a predetermined clock signal or a feedback signal.
11. A conversion control circuit, configured to operably control a flyback power converter circuit, the flyback power converter circuit including a transformer, which includes a primary side winding coupled to an input power and a secondary side winding coupled to an output node, wherein the input power includes an input voltage and an input current; a primary side switch, which is coupled to the primary side winding, and is configured to operably control the primary side winding to convert the input power such that the secondary side winding generates an output power on the output node, wherein the output power includes an output voltage and an output current; a clamping circuit, which includes an auxiliary switch and an auxiliary capacitor, the auxiliary capacitor being coupled to the auxiliary switch in series to form an auxiliary branch which is coupled with the primary side winding in parallel; the flyback power converter circuit further including the conversion control circuit, the conversion control circuit being configured to operably generate a primary side switch control signal and an auxiliary switch control signal to control the primary side switch and the auxiliary switch respectively to convert the input power to the output power, wherein the auxiliary switch and the primary side switch do not switch complementarily to each other; the conversion control circuit comprising:
an auxiliary switch control circuit, configured to operably control the auxiliary switch according to at least one of the followings: (1) a current related signal, (2) the input voltage, and/or (3) the output voltage, such that a voltage difference between a current inflow terminal and a current outflow terminal of the primary side switch is substantially zero when the primary side switch turns ON, whereby zero voltage switching is achieved; wherein the current related signal relates to at least one of the followings: (1) the output current, (2) a conduction current of the primary side switch, and/or (3) a conduction current of the primary side winding; and
a signal sensing circuit, configured to operably sense the current related signal, the input voltage, and/or the output voltage;
wherein the auxiliary switch control circuit includes:
a threshold generator circuit, configured to operably generate a voltage threshold according to a reference voltage and the current related signal;
a ramp generator circuit, configured to operably generate a ramp signal according to a reference current and the auxiliary switch control signal;
a comparator circuit, configured to operably compare the ramp signal and the voltage threshold to generate a comparison result; and
a logic circuit, configure to operably generate the auxiliary switch control signal according to the comparison result and an auxiliary switch start signal to control the auxiliary switch, such that an ON time of the auxiliary switch increases when the current related signal indicates that the peak current of the primary side switch is decreasing;
wherein the conversion control circuit generates the auxiliary switch start signal according to a predetermined clock signal or a feedback signal.
19. A flyback power converter circuit, comprising:
a transformer, which includes a primary side winding coupled to an input power and a secondary side winding coupled to an output node, wherein the input power includes an input voltage and an input current;
a primary side switch, coupled to the primary side winding, and configured to operably control the primary side winding to convert the input power such that the secondary side winding generates an output power on the output node, wherein the output power includes an output voltage and an output current;
a clamping circuit, including:
an auxiliary switch; and
an auxiliary capacitor, coupled to the auxiliary switch in series to form an auxiliary branch which is coupled with the primary side winding in parallel; and
a conversion control circuit, configured to operably generate a primary side switch control signal and an auxiliary switch control signal according to a feedback signal to control the primary side switch and the auxiliary switch respectively to convert the input power to the output power; the conversion control circuit including:
a sequence circuit, configured to operably trigger the auxiliary switch to turn ON according to an auxiliary switch start signal, and trigger the primary side switch to turn ON posterior to an auxiliary dead time after the auxiliary switch turns OFF, such that a voltage difference between a current inflow terminal and a current outflow terminal of the primary side switch is substantially zero when the primary side switch turns ON, whereby zero voltage switching is achieved; wherein the conversion control circuit generates the auxiliary switch start signal according to a predetermined clock signal or the feedback signal;
wherein the sequence circuit includes:
a first sequence control circuit, configured to operably generate the auxiliary switch control signal according to the auxiliary switch start signal and a first timing control signal, wherein the auxiliary switch start signal triggers the auxiliary switch control signal to turn ON the auxiliary switch, and the first timing control signal triggers the auxiliary switch control signal to turn OFF the auxiliary switch;
a first timing control circuit, configured to operably generate the first timing control signal according to the auxiliary switch start signal to determine the ON time of the auxiliary switch;
a second timing control circuit, configured to generate a second timing control signal according to the first timing control signal to determine the auxiliary dead time, wherein both the primary side switch and the auxiliary switch are OFF during the auxiliary dead time;
a second sequence control circuit, configured to operably generate the primary side switch control signal according to the second timing control signal and a third timing control signal, wherein the second timing control signal triggers the primary side switch, and the third timing control signal triggers the primary side switch control signal to turn OFF the primary side switch; and
a third timing control circuit, configured to operably generate the third timing control signal according to the second timing control signal to determine an ON time of the primary side switch.
7. A flyback power converter circuit, comprising:
a transformer, which includes a primary side winding coupled to an input power and a secondary side winding coupled to an output node, wherein the input power includes an input voltage and an input current;
a primary side switch, coupled to the primary side winding, and configured to operably control the primary side winding to convert the input power such that the secondary side winding generates an output power on the output node, wherein the output power includes an output voltage and an output current;
a clamping circuit, including:
an auxiliary switch; and
an auxiliary capacitor, coupled to the auxiliary switch in series to form an auxiliary branch which is coupled with the primary side winding in parallel; and
a conversion control circuit, configured to operably generate a primary side switch control signal and an auxiliary switch control signal to control the primary side switch and the auxiliary switch respectively to convert the input power to the output power, wherein the auxiliary switch and the primary side switch do not switch complementarily to each other, the conversion control circuit including:
an auxiliary switch control circuit, configured to operably control the auxiliary switch according to at least one of the followings: (1) a current related signal, (2) the input voltage, and/or (3) the output voltage, such that a voltage difference between a current inflow terminal and a current outflow terminal of the primary side switch is substantially zero when the primary side switch turns ON, whereby zero voltage switching is achieved, wherein the current related signal relates to at least one of the followings: (1) the output current, (2) a conduction current of the primary side switch, and/or (3) a conduction current of the primary side winding; and
a signal sensing circuit, configured to operably sense the current related signal, the input voltage, and/or the output voltage;
wherein the auxiliary switch control circuit triggers the auxiliary switch to turn ON according to an auxiliary switch start signal, wherein the conversion control circuit generates the auxiliary switch start signal according to a predetermined clock signal or a feedback signal;
wherein the conversion control circuit further includes:
a sequence circuit, configured to operably trigger the primary side switch to turn ON posterior to an auxiliary dead time after the auxiliary switch turns OFF according to an auxiliary switch related signal, wherein the auxiliary switch related signal is the auxiliary switch control signal or a signal related to the auxiliary switch control signal;
wherein the sequence circuit includes:
a dead time control circuit, configured to operably generate a dead time control signal to determine the auxiliary dead time according to the auxiliary switch related signal, wherein both the primary side switch and the auxiliary switch are OFF during the auxiliary dead time;
a primary side switch sequence control circuit, configured to operably generate the primary side switch control signal according to the dead time control signal and a primary side switch timing control signal, wherein the dead time control signal triggers the primary side switch control signal to turn ON the primary side switch, and the primary side switch timing control signal triggers the primary side switch control signal to turn OFF the primary side switch; and
a primary side switch timing control circuit, configured to operably generate the primary side switch control signal according to the dead time control signal to determine the ON time of the primary side switch.
15. A conversion control circuit, configured to operably control a flyback power converter circuit, the flyback power converter circuit including a transformer, which includes a primary side winding coupled to an input power and a secondary side winding coupled to an output node, wherein the input power includes an input voltage and an input current; a primary side switch, which is coupled to the primary side winding, and is configured to operably control the primary side winding to convert the input power such that the secondary side winding generates an output power on the output node, wherein the output power includes an output voltage and an output current; a clamping circuit, which includes an auxiliary switch and an auxiliary capacitor, the auxiliary capacitor being coupled to the auxiliary switch in series to form an auxiliary branch which is coupled with the primary side winding in parallel; the flyback power converter circuit further including the conversion control circuit, the conversion control circuit being configured to operably generate a primary side switch control signal and an auxiliary switch control signal to control the primary side switch and the auxiliary switch respectively to convert the input power to the output power, wherein the auxiliary switch and the primary side switch do not switch complementarily to each other; the conversion control circuit comprising:
an auxiliary switch control circuit, configured to operably control the auxiliary switch according to at least one of the followings: (1) a current related signal, (2) the input voltage, and/or (3) the output voltage, such that a voltage difference between a current inflow terminal and a current outflow terminal of the primary side switch is substantially zero when the primary side switch turns ON, whereby zero voltage switching is achieved; wherein the current related signal relates to at least one of the followings: (1) the output current, (2) a conduction current of the primary side switch, and/or (3) a conduction current of the primary side winding; and
a signal sensing circuit, configured to operably sense the current related signal, the input voltage, and/or the output voltage;
wherein the auxiliary switch control circuit triggers the auxiliary switch to turn ON according to an auxiliary switch start signal, wherein the conversion control circuit generates the auxiliary switch start signal according to a predetermined clock signal or a feedback signal;
wherein the conversion control circuit further includes:
a sequence circuit, configured to operably trigger the primary side switch to turn ON posterior to an auxiliary dead time after the auxiliary switch turns OFF according to an auxiliary switch related signal, wherein the auxiliary switch related signal is the auxiliary switch control signal or a signal related to the auxiliary switch control signal;
wherein the sequence circuit includes:
a dead time control circuit, configured to operably generate a dead time control signal to determine the auxiliary dead time according to the auxiliary switch related signal, wherein both the primary side switch and the auxiliary switch are OFF during the auxiliary dead time;
a primary side switch sequence control circuit, configured to operably generate the primary side switch control signal according to the dead time control signal and a primary side switch timing control signal, wherein the dead time control signal triggers the primary side switch control signal to turn ON the primary side switch, and the primary side switch timing control signal triggers the primary side switch control signal to turn OFF the primary side switch; and
a primary side switch timing control circuit, configured to operably generate the primary side switch control signal according to the dead time control signal to determine the ON time of the primary side switch.
2. The flyback power converter circuit of
4. The flyback power converter circuit of
5. The flyback power converter circuit of
a mode operation circuit, configured to operably determine a switching frequency of the primary side switch according to at least one of the input voltage, the output voltage, the input current, and/or the output current, wherein the switching frequency has an upper limit and a lower limit.
6. The flyback power converter circuit of
wherein the conversion control circuit further includes:
a sequence circuit, configured to operably trigger the primary side switch to turn ON posterior to an auxiliary dead time after the auxiliary switch turns OFF according to an auxiliary switch related signal, wherein the auxiliary switch related signal is the auxiliary switch control signal or a signal related to the auxiliary switch control signal.
8. The flyback power converter circuit of
10. The conversion control circuit of
12. The conversion control circuit of
13. The conversion control circuit of
a mode operation circuit, configured to operably determine a switching frequency of the primary side switch according to at least one of the input voltage, the output voltage, the input current, and/or the output current, wherein the switching frequency has an upper limit and a lower limit.
14. The conversion control circuit of
wherein the conversion control circuit further includes:
a sequence circuit, configured to operably trigger the primary side switch to turn ON posterior to an auxiliary dead time after the auxiliary switch turns OFF according to an auxiliary switch related signal, wherein the auxiliary switch related signal is the auxiliary switch control signal or a signal related to the auxiliary switch control signal.
16. The conversion control circuit of
18. The flyback power converter circuit of
a mode operation circuit, configured to operably determine a switching frequency of the auxiliary switch start signal according to at least one of the input voltage, the output voltage, the input current, and/or the output current, wherein the switching frequency has an upper limit and a lower limit.
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The present invention claims priority to U.S. 62/486,771, filed on Apr. 18, 2017, and TW 106124520, filed on Jul. 21, 2017.
The present invention relates to a flyback power converter circuit; particularly, it relates to a flyback power converter circuit with active clamping and zero voltage switching. The present invention also relates to a conversion control circuit for use in the flyback power converter circuit.
The prior art circuit in
The prior art circuit in
Compared to the prior art in
From one perspective, the present invention provides a flyback power converter circuit, comprising: a transformer, which includes a primary side winding coupled to an input power and a secondary side winding coupled to an output node, wherein the input power includes an input voltage and an input current; a primary side switch, coupled to the primary side winding, and configured to operably control the primary side winding to convert the input power such that the secondary side winding generates an output power on the output node, wherein the output power includes an output voltage and an output current; a clamping circuit, including: an auxiliary switch; and an auxiliary capacitor, coupled to the auxiliary switch in series to form an auxiliary branch which is coupled with the primary side winding in parallel; and a conversion control circuit, configured to operably generate a primary side switch control signal and an auxiliary switch control signal to control the primary side switch and the auxiliary switch respectively to convert the input power to the output power, wherein the auxiliary switch and the primary side switch do not switch complementarily to each other, the conversion control circuit including: an auxiliary switch control circuit, configured to operably control the auxiliary switch according to at least one of the followings: (1) a current related signal, (2) the input voltage, and/or (3) the output voltage, such that a voltage difference between a current inflow terminal and a current outflow terminal of the primary side switch is substantially zero when the primary side switch turns ON, whereby zero voltage switching is achieved, wherein the current related signal relates to at least one of the followings: (1) the output current, (2) a conduction current of the primary side switch, and/or (3) a conduction current of the primary side winding; and a signal sensing circuit, configured to operably sense the current related signal, the input voltage, and/or the output voltage.
In one embodiment, an ON time of the auxiliary switch increases according to at least one of the followings: (1) when the current related signal indicates that a peak current of the primary side switch is decreasing, (2) when the input voltage is increasing, and/or (3) when the output voltage is increasing, such that the auxiliary switch conducts a magnetizing current of a parasitic magnetizing inductance of the primary side winding to discharge a parasitic capacitor of the primary side switch, whereby the primary side switch is zero voltage switching when the primary side switch turns ON.
In one embodiment, the auxiliary switch control circuit includes: a threshold generator circuit, configured to operably generate a voltage threshold according to a reference voltage and the current related signal; a ramp generator circuit, configured to operably generate a ramp signal according to a reference current and the auxiliary switch control signal; a comparator circuit, configured to operably compare the ramp signal and the voltage threshold to generate a comparison result; and a logic circuit, configure to operably generate the auxiliary switch control signal according to the comparison result and an auxiliary switch start signal to control the auxiliary switch, such that an ON time of the auxiliary switch increases when the current related signal indicates that the peak current of the primary side switch is decreasing; wherein the conversion control circuit generates the auxiliary switch start signal according to a predetermined clock signal or a feedback signal.
In one embodiment, the conversion control circuit further includes a mode operation circuit, configured to operably control a switching frequency of the primary side switch according to at least one of the input voltage, the output voltage, the input current, and/or the output current, such that the flyback power converter circuit operates in a discontinuous conduction mode (DCM) or a quasi-resonant mode (QRM).
In one embodiment, the conversion control circuit further includes: a mode operation circuit, configured to operably determine a switching frequency of the primary side switch according to at least one of the input voltage, the output voltage, the input current, and/or the output current, wherein the switching frequency has an upper limit and a lower limit.
In one embodiment, the auxiliary switch control circuit triggers the auxiliary switch to turn ON according to an auxiliary switch start signal, wherein the conversion control circuit generates the auxiliary switch start signal according to a predetermined clock signal or a feedback signal; wherein the conversion control circuit further includes: a sequence circuit, configured to operably trigger the primary side switch to turn ON posterior to an auxiliary dead time after the auxiliary switch turns OFF according to an auxiliary switch related signal, wherein the auxiliary switch related signal is the auxiliary switch control signal or a signal related to the auxiliary switch control signal.
In one embodiment, the sequence circuit includes: a dead time control circuit, configured to operably generate a dead time control signal to determine the auxiliary dead time according to the auxiliary switch related signal, wherein both the primary side switch and the auxiliary switch are OFF during the auxiliary dead time; a primary side switch sequence control circuit, configured to operably generate the primary side switch control signal according to the dead time control signal and a primary side switch timing control signal, wherein the dead time control signal triggers the primary side switch control signal to turn ON the primary side switch, and the primary side switch timing control signal triggers the primary side switch control signal to turn OFF the primary side switch; and a primary side switch timing control circuit, configured to operably generate the primary side switch control signal according to the dead time control signal to determine the ON time of the primary side switch.
In one embodiment, the sequence circuit includes: a first sequence control circuit, configured to operably generate the auxiliary switch control signal according to the auxiliary switch start signal and a first timing control signal, wherein the auxiliary switch start signal triggers the auxiliary switch control signal to turn ON the auxiliary switch, and the first timing control signal triggers the auxiliary switch control signal to turn OFF the auxiliary switch; a first timing control circuit, configured to operably generate the first timing control signal according to the auxiliary switch start signal to determine the ON time of the auxiliary switch; a second timing control circuit, configured to generate a second timing control signal according to the first timing control signal to determine the auxiliary dead time, wherein both the primary side switch and the auxiliary switch are OFF during the auxiliary dead time; a second sequence control circuit, configured to operably generate the primary side switch control signal according to the second timing control signal and a third timing control signal, wherein the second timing control signal triggers the primary side switch control signal to turn ON the primary side switch, and the third timing control signal triggers the primary side switch control signal to turn OFF the primary side switch; and a third timing control circuit, configured to operably generate the third timing control signal according to the second timing control signal to determine an ON time of the primary side switch.
In one embodiment, the ON time of the primary side switch is controlled through a primary side feedback loop or a secondary side feedback loop.
From another perspective, the present invention provides a conversion control circuit, configured to operably control a flyback power converter circuit, the flyback power converter circuit including a transformer, which includes a primary side winding coupled to an input power and a secondary side winding coupled to an output node, wherein the input power includes an input voltage and an input current; a primary side switch, which is coupled to the primary side winding, and is configured to operably control the primary side winding to convert the input power such that the secondary side winding generates an output power on the output node, wherein the output power includes an output voltage and an output current; a clamping circuit, which includes an auxiliary switch and an auxiliary capacitor, the auxiliary capacitor being coupled to the auxiliary switch in series to form an auxiliary branch which is coupled with the primary side winding in parallel; the flyback power converter circuit further including the conversion control circuit, the conversion control circuit being configured to operably generate a primary side switch control signal and an auxiliary switch control signal to control the primary side switch and the auxiliary switch respectively to convert the input power to the output power, wherein the auxiliary switch and the primary side switch do not switch complementarily to each other; the conversion control circuit comprising: an auxiliary switch control circuit, configured to operably control the auxiliary switch according to at least one of the followings: (1) a current related signal, (2) the input voltage, and/or (3) the output voltage, such that a voltage difference between a current inflow terminal and a current outflow terminal of the primary side switch is substantially zero when the primary side switch turns ON, whereby zero voltage switching is achieved; wherein the current related signal relates to at least one of the followings: (1) the output current, (2) a conduction current of the primary side switch, and/or (3) a conduction current of the primary side winding; and a signal sensing circuit, configured to operably sense the current related signal, the input voltage, and/or the output voltage.
From another perspective, the present invention provides a flyback power converter circuit, comprising: a transformer, which includes a primary side winding coupled to an input power and a secondary side winding coupled to an output node, wherein the input power includes an input voltage and an input current; a primary side switch, coupled to the primary side winding, and is configured to operably control the primary side winding to convert the input power such that the secondary side winding generates an output power on the output node, wherein the output power includes an output voltage and an output current; a clamping circuit, including: an auxiliary switch; and an auxiliary capacitor, coupled to the auxiliary switch in series to form an auxiliary branch which is coupled with the primary side winding in parallel; and a conversion control circuit, configured to operably generate a primary side switch control signal and an auxiliary switch control signal according to a feedback signal to control the primary side switch and the auxiliary switch respectively to convert the input power to the output power; the conversion control circuit including: a sequence circuit, configured to operably trigger the auxiliary switch to turn ON according to an auxiliary switch start signal, and trigger the primary side switch to turn ON posterior to an auxiliary dead time after the auxiliary switch turns OFF, such that a voltage difference between a current inflow terminal and a current outflow terminal of the primary side switch is substantially zero when the primary side switch turns ON, whereby zero voltage switching is achieved; wherein the conversion control circuit generates the auxiliary switch start signal according to a predetermined clock signal or the feedback signal.
In one embodiment, the sequence circuit includes: a first sequence control circuit, configured to operably generate the auxiliary switch control signal according to the auxiliary switch start signal and a first timing control signal, wherein the auxiliary switch start signal triggers the auxiliary switch control signal to turn ON the auxiliary switch, and the first timing control signal triggers the auxiliary switch control signal to turn OFF the auxiliary switch; a first timing control circuit, configured to operably generate the first timing control signal according to the auxiliary switch start signal to determine the ON time of the auxiliary switch; a second timing control circuit, configured to generate a second timing control signal according to the first timing control signal to determine the auxiliary dead time, wherein both the primary side switch and the auxiliary switch are OFF during the auxiliary dead time; a second sequence control circuit, configured to operably generate the primary side switch control signal according to the second timing control signal and a third timing control signal, wherein the second timing control signal triggers the primary side switch control signal to turn ON the primary side switch, and the third timing control signal triggers the primary side switch control signal to turn OFF the primary side switch; and a third timing control circuit, configured to operably generate the third timing control signal according to the second timing control signal to determine an ON time of the primary side switch.
The objectives, technical details, features, and effects of the present invention will be better understood with regard to the detailed description of the embodiments below.
The drawings as referred to throughout the description of the present invention are for illustration only, to show the interrelations between the circuits and the signal waveforms, but not drawn according to actual scale.
Still referring to
According to the present invention, the conversion control circuit 30 adjusts an ON time TON2 of the auxiliary switch S2 according to at least one of the followings: (1) a current related signal ISEN, (2) the input voltage VI, and/or (3) the output voltage VO, such that a voltage difference (e.g. VDS1 as shown in
In one embodiment, the feedback signal FB relates to the output voltage VO or the output current IOUT, and in this case the feedback signal FB is obtained through a secondary side feedback loop; for example, the feedback signal FB can be generated by a feedback sensing circuit 50 which senses the output voltage VO or the output current IOUT to generate the feedback signal FB. In another embodiment, the feedback signal FB relates to the conduction current IP of the primary side winding W1 or the primary side related voltage (e.g. VDS1), and in this case the feedback signal FB is obtained through a primary side feedback loop, to determine the ON time TON1 of the primary side switch S1.
When operating in discontinuous conduction mode or quasi-resonant mode, for the primary side switch S1 to achieve zero voltage switching, the energy stored in the parasitic leakage inductance Lr and the parasitic magnetizing inductance Lm of the primary side winding W1 and the energy stored in the parasitic capacitor Coss should meet the following requirements:
and thus:
In the above equations, Ipk indicates the peak current value of the conduction current IP of the primary side winding W1, and n indicates the turn ratio between the primary side winding W1 and the secondary side winding W2.
In some cases, for example when the input voltage VI is large, the energy transferred from the parasitic leakage inductance Lr and stored in the auxiliary capacitor Cr may be insufficient to fully discharge the parasitic capacitor Coss of the primary side switch S1 before the primary side switch S1 is turned ON, and hence the primary side switch S1 cannot achieve zero voltage switching. According to this invention, the energy stored in the parasitic magnetizing inductance Lm can be adjusted by adjusting the ON time TON2 of the auxiliary switch S2, such that the clamping circuit 20 can fully discharge the parasitic capacitor Coss of the primary side switch S1, whereby the primary side switch S1 can achieve zero voltage switching. The auxiliary ON time TON2 of the auxiliary switch S2 can be adjusted to increase according to at least one of the followings: (1) when the current related signal ISEN indicates that a peak current Ipk of the primary side switch S1 is decreasing, (2) when the input voltage VI is increasing, and/or (3) when the output voltage VO is increasing. From the above equations 1-3, the ON time TON2 of the auxiliary switch S2 can be properly determined, to conduct the magnetizing current of the parasitic magnetizing inductance Lm of the primary side winding W1 to fully discharge the parasitic capacitor Coss of the primary side switch S1, such that the primary side switch S1 is zero voltage switch when turning ON.
Note that adjusting the magnetizing current Im by adjusting the ON time TON2 is more effective in DCM or QRM. Hence, in one embodiment, the conversion control circuit 30 controls a switching frequency of the primary side switch S1 according to at least one of the input voltage VI, the output voltage VO, the input current IIN, and/or the output current IOUT, such that the flyback power converter circuit operates in DCM or QRM for achieving zero voltage switching.
In one embodiment, the conversion control circuit 30 generates the auxiliary switch start signal S2S according to a predetermined clock signal CK. In one embodiment, the conversion control circuit 30 generates the auxiliary switch start signal S2S according to the feedback signal FB and/or the current related signal ISEN. For example, when the flyback power converter circuit operates at a fixed frequency, the predetermined clock signal CK can be generated by an internal oscillator. Or, when the flyback power converter circuit operates under for example but not limited to pulse frequency modulation (PFM), the auxiliary switch start signal S2S can be generated according to the feedback signal FB.
In one embodiment, the mode operation circuit 34 controls the switching frequency of the primary side switch S1 according to at least one of the input voltage VI, the output voltage VO, the input current IIN, and/or the output current IOUT, such that the flyback power converter circuit operates in a discontinuous conduction mode (DCM) or a quasi-resonant mode (QRM) and the primary side switch S1 is zero voltage switching.
Referring to
From one perspective, the sequence circuit 32 operates to ensure that, before the primary side switch S1 turns ON, the auxiliary switch S2 has turned ON for a time period of TON2, and there is an auxiliary dead time TD between when the auxiliary switch S2 turns OFF and when the primary side switch S1 turns ON, to ensure zero voltage switching of the primary side switch S1.
Referring to
The present invention has been described in considerable detail with reference to certain preferred embodiments thereof. It should be understood that the description is for illustrative purpose, not for limiting the scope of the present invention. It is not limited for each of the embodiments described hereinbefore to be used alone; under the spirit of the present invention, two or more of the embodiments described hereinbefore can be used in combination. For example, two or more of the embodiments can be used together, or, a part of one embodiment can be used to replace a corresponding part of another embodiment. As an example, the “sequence circuit” may be combined with the “auxiliary switch control circuit”, the “mode operation circuit”, and the “signal sensing circuit”. In this case, the conversion control circuit may include a logic control circuit to integrate the control schemes provided by the aforementioned circuits for controlling the primary side switch S1 and/or the auxiliary switch S2. Furthermore, those skilled in this art can readily conceive variations and modifications within the spirit of the present invention. As another example, to perform an action “according to” a certain signal as described in the context of the present invention is not limited to performing an action strictly according to the signal itself, but can be performing an action according to a converted form or a scaled-up or down form of the signal, i.e., the signal can be processed by a voltage-to-current conversion, a current-to-voltage conversion, and/or a ratio conversion, etc. before an action is performed. The spirit of the present invention should cover all such and other modifications and variations, which should be interpreted to fall within the scope of the following claims and their equivalents.
Yang, Ta-yung, Lin, Kun-Yu, Lin, Tzu-Chen, Chang, Wei-Hsu
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